Acetylation of xenogeneic silencer H-NS regulates biofilm development through the nitrogen homeostasis regulator in Shewanella

舍瓦内拉 生物膜 生物 希瓦氏菌属 乙酰化 类核 生物化学 组蛋白 谷氨酰胺合成酶 谷氨酰胺 细胞生物学 细菌 基因 氨基酸 遗传学 大肠杆菌
作者
Xiaoxiao Liu,Jun Li,Zhixuan Zhang,Yejun He,Mingfang Wang,Yunhu Zhao,Shituan Lin,Tianlang Liu,Yu-Cai Liao,Zhongfu Ni,Ke Yuan,Yong Ling,Ziyao Liu,Xiaozhong Chen,Zhe Chen,Ran Chen,Pengxia Wang,Bing Gu
出处
期刊:Nucleic Acids Research [Oxford University Press]
标识
DOI:10.1093/nar/gkad1219
摘要

Adjusting intracellular metabolic pathways and adopting suitable live state such as biofilms, are crucial for bacteria to survive environmental changes. Although substantial progress has been made in understanding how the histone-like nucleoid-structuring (H-NS) protein modulates the expression of the genes involved in biofilm formation, the precise modification that the H-NS protein undergoes to alter its DNA binding activity is still largely uncharacterized. This study revealed that acetylation of H-NS at Lys19 inhibits biofilm development in Shewanella oneidensis MR-1 by downregulating the expression of glutamine synthetase, a critical enzyme in glutamine synthesis. We further found that nitrogen starvation, a likely condition in biofilm development, induces deacetylation of H-NS and the trimerization of nitrogen assimilation regulator GlnB. The acetylated H-NS strain exhibits significantly lower cellular glutamine concentration, emphasizing the requirement of H-NS deacetylation in Shewanella biofilm development. Moreover, we discovered in vivo that the activation of glutamine biosynthesis pathway and the concurrent suppression of the arginine synthesis pathway during both pellicle and attached biofilms development, further suggesting the importance of fine tune nitrogen assimilation by H-NS acetylation in Shewanella. In summary, posttranslational modification of H-NS endows Shewanella with the ability to respond to environmental needs by adjusting the intracellular metabolism pathways.
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